Wet spinning and 3D printing of supramolecular hydrogels in acid-base and dynamic conditions

被引:3
|
作者
Andriamiseza, Faniry [1 ]
Peters, Salome [1 ]
Roux, Clement [1 ]
Dietrich, Nicolas [2 ]
Coudret, Christophe [1 ]
Fitremann, Juliette [1 ,3 ]
机构
[1] Univ Toulouse III Paul Sabatier, Univ Toulouse, Lab IMRCP, CNRS UMR 5623, Toulouse, France
[2] Univ Toulouse, Toulouse Biotechnol Inst, CNRS, INRAE,INSA, Toulouse, France
[3] Univ Paul Sabatier Toulouse III, Lab IMRCP, Batiment 2R1,118 Route Narbonne, F-31062 Toulouse 9, France
关键词
Molecular gel; Hydrogel; Supramolecular; LMWG; Low Molecular Weight Gelator self-assembly; Saccharide; Carbohydrate; Galactose; Wet spinning; Injectable; Injection; Noodle; Thread; Jet; Liquid-liquid interface; Interfacial reaction; mixing 3D printing; pH; biocompatible; MOLECULAR-WEIGHT GELS; CHEMICAL GARDENS; RELEASE; FIBERS; LENGTH;
D O I
10.1016/j.colsurfa.2023.131765
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
N-alkyl-D-galactonamides give biocompatible hydrogels that are very delicate and not injectable. To circumvent their mechanical fragility and the injectability issue, we have developed a method of injection based on solvent-water exchange. A solution of the gelator in a good solvent is injected vertically in a bath of water. The diffusion of water inside the solvent jet triggers the fast self-assembly of the N-alkyl-D-galactonamides into supramolecular fibers. It leads to the formation of well-defined gel filaments. We first used dimethylsulfoxide (DMSO) as the good solvent of N-alkyl-D-galactonamides. Then, we considered to get rid of this organic solvent by implementing an "all-aqueous method", paving the way to green chemistry methods. Despite the fact that these molecules do not have conventional acid-base functions in water, N-alkyl-D-galactonamides can be deprotonated and solubilized in highly concentrated NaOH aqueous solutions. As with DMSO, the basic solution is denser than the solution in the bath. Thus, a well-defined vertical jet falls down when the solution is injected in an acidic aqueous solution. The neutralization of the base at the acid-base interface triggers the gelation and leads to the formation of well-defined gel filaments as well. The acid-base reaction at the interface has been visualized by colored pH in-dicators. With phenol red (pKa = 7.9), a pink-to-yellow V-shaped "flame" transition is clearly observed. A similar transition from colorless-to-pink is observed with the pH indicator acid fuchsin, which pKa = 13 is close to the N-heptyl-D-galactonamide pKa. The distance from the nozzle of this transition zone is directly related to the injection rate, which is well-described by a model. We also applied this method to 3D printing, by a liquid-in liquid direct writing. It gives well-resolved patterns. The opportunity to get noodles or 3D printed patterns made of single small molecules by acid-base exchange opens new perspectives. Notably, the supramolecular fibers could be used to support and direct the formation of inorganic materials with original microstructures.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] 3D Printing of Ultratough Polyion Complex Hydrogels
    Zhu, Fengbo
    Cheng, Libo
    Yin, Jun
    Wu, Zi Liang
    Qian, Jin
    Fu, Jianzhong
    Zheng, Qiang
    ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (45) : 31304 - 31310
  • [22] 3D printing of hard/soft switchable hydrogels
    Liu, Guofeng
    Xia, Pengcheng
    Kong, Weicheng
    Qiao, Tianhong
    Sun, Yuan
    Ren, Wenjie
    He, Yong
    INTERNATIONAL JOURNAL OF EXTREME MANUFACTURING, 2025, 7 (04)
  • [23] Chitosan hydrogels in 3D printing for biomedical applications
    Rajabi, Mina
    McConnell, Michelle
    Cabral, Jaydee
    Ali, M. Azam
    CARBOHYDRATE POLYMERS, 2021, 260 (260)
  • [24] 3D Printing of Hydrogels for Stretchable Ionotronic Devices
    Ge, Gang
    Wang, Qian
    Zhang, Yi-Zhou
    Alshareef, Husam N.
    Dong, Xiaochen
    ADVANCED FUNCTIONAL MATERIALS, 2021, 31 (52)
  • [25] Hydrocolloid Inks for 3D Printing of Porous Hydrogels
    Sears, Nicholas A.
    Wilems, Thomas S.
    Gold, Karli A.
    Lan, Ziyang
    Cereceres, Stacy N.
    Dhavalikar, Prachi S.
    Foudazi, Reza
    Cosgriff-Hernandez, Elizabeth M.
    ADVANCED MATERIALS TECHNOLOGIES, 2019, 4 (02)
  • [26] 3D printing of shear-thinning hyaluronic acid hydrogels with secondary crosslinking
    Ouyang, Liliang
    Highley, Christopher
    Rodell, Christopher
    Sun, Wei
    Burdick, Jason
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 252
  • [27] Highly Porous, Biocompatible Tough Hydrogels, Processable via Gel Fiber Spinning and 3D Gel Printing
    Naficy, Sina
    Le, Thi Yen Loan
    Oveissi, Farshad
    Lee, Aeryne
    Hung, Jui Chien
    Wise, Steven G.
    Winlaw, David S.
    Dehghani, Fariba
    ADVANCED MATERIALS INTERFACES, 2020, 7 (03)
  • [28] 3D wet-spinning printing of wearable flexible electronic sensors of polypyrrole@polyvinyl formate
    Qian, Jun
    Xiao, Ruimin
    Su, Fan
    Guo, Mengna
    Liu, Dagang
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2022, 111 : 490 - 498
  • [29] DYNAMIC 3D MICROPLASMA PHOTONIC CRYSTAL BY 3D PRINTING
    Sun, Peter P.
    Zhong, Shengyuan
    Eden, J. Gary
    Zhang, Runyu
    Braun, Paul V.
    Chen, Wenyuan
    2017 IEEE INTERNATIONAL CONFERENCE ON PLASMA SCIENCE (ICOPS), 2017,
  • [30] In Situ Supramolecular Assembly and Modular Modification of Hyaluronic Acid Hydrogels for 3D Cellular Engineering
    Park, Kyeng Min
    Yang, Jeong-A
    Jung, Hyuntae
    Yeom, Junseok
    Park, Ji Sun
    Park, Keun-Hong
    Hoffman, Allan S.
    Hahn, Sei Kwang
    Kim, Kimoon
    ACS NANO, 2012, 6 (04) : 2960 - 2968